Joint Channel Estimation and Symbol Detection for OFDM Systems in Rapidly Time-Varying Sparse Multipath Channels

被引:0
作者
Habib Şenol
机构
[1] Kadir Has University,Department of Computer Engineering
来源
Wireless Personal Communications | 2015年 / 82卷
关键词
Sparse multipath channel; OFDM; SAGE; Matching pursuit; Basis expansion;
D O I
暂无
中图分类号
学科分类号
摘要
In this paper, we propose a space-alternating generalized expectation maximization (SAGE) based joint channel estimation and data detection algorithm in compressive sensing (CS) framework for orthogonal frequency-division multiplexing (OFDM) systems in rapidly time-varying sparse multipath channels. Using dynamic parametric channel model, the sparse multipath channel is parameterized by a small number of distinct paths, each represented by the path delays and path gains. In our model, we assume that the path gains rapidly vary within the OFDM symbol duration while the number of paths and path delays vary symbol by symbol. Since the convergency of the SAGE algorithm needs statistically independent parameter set of interest to be estimated, we specifically choose the discrete orthonormal Karhunen–Loeve basis expansion model (DKL-BEM) to provide statistically independent BEM coefficients within one OFDM symbol duration and use just a few significant BEM coefficients to represent the rapidly time-varying path gains. The resulting SAGE algorithm that also incorporates inter-channel interference cancellation updates the data sequences and the channel parameters serially. The computer simulations show that our proposed algorithm has better channel estimation and symbol error rate performance than that of the orthogonal matching pursuit algorithm that is commonly proposed in the CS literature.
引用
收藏
页码:1161 / 1178
页数:17
相关论文
共 50 条
[31]   Pilot assisted channel estimation for MIMO-OFDM systems in time-varying fading channels [J].
Liu, CH ;
Kuo, C .
International Conference on Computing, Communications and Control Technologies, Vol 3, Proceedings, 2004, :286-290
[32]   Practical Estimation of Rapidly Varying Channels for OFDM Systems [J].
Hrycak, Tomasz ;
Das, Saptarshi ;
Matz, Gerald ;
Feichtinger, Hans G. .
IEEE TRANSACTIONS ON COMMUNICATIONS, 2011, 59 (11) :3040-3048
[33]   Polynomial estimation of time-varying multipath gains with ICI mitigation in OFDM systems [J].
Hijazi, Hussein ;
Ros, Laurent .
2008 3RD INTERNATIONAL SYMPOSIUM ON COMMUNICATIONS, CONTROL AND SIGNAL PROCESSING, VOLS 1-3, 2008, :905-910
[34]   Genetic Algorithm-Assisted Data Detection for OFDM Systems under Rapidly Time-Varying Channels [J].
Dong, Zhicheng ;
Fan, Pingzhi ;
Lei, Xianfu .
2017 IEEE 85TH VEHICULAR TECHNOLOGY CONFERENCE (VTC SPRING), 2017,
[35]   Estimation of time-varying channels for pilot-assisted OFDM systems [J].
TANG Tian DENG Gang JIANG Jun School of Telecommunication Engineering Beijing University of Posts and Telecommunications Beijing China .
The Journal of China Universities of Posts and Telecommunications, 2007, (02) :94-98
[36]   Estimation of time-varying channels for pilot-assisted OFDM systems [J].
School of Telecommunication Engineering, Beijing University of Posts and Telecommunications, Beijing, 100876, China .
Journal of China Universities of Posts and Telecommunications, 2007, 14 (02) :94-98
[37]   Optimal Power Allocation for Channel Estimation of OFDM Uplinks in Time-Varying Channels [J].
Yao, Rugui ;
Liu, Yinsheng ;
Li, Geng ;
Xu, Juan .
ETRI JOURNAL, 2015, 37 (01) :11-20
[38]   Artificial neural network based estimation of sparse multipath channels in OFDM systems [J].
Senol, Habib ;
Tahir, Abdur Rehman Bin ;
Ozmen, Atilla .
TELECOMMUNICATION SYSTEMS, 2021, 77 (01) :231-240
[39]   BEM-based Reconstruction of Time-varying Sparse Channel in OFDM Systems [J].
Qi, Fei ;
Ju, Yanhong ;
Sun, Songlin ;
Jing, Xiaojun ;
Lu, Yueming .
2013 IEEE 78TH VEHICULAR TECHNOLOGY CONFERENCE (VTC FALL), 2013,
[40]   Artificial neural network based estimation of sparse multipath channels in OFDM systems [J].
Habib Senol ;
Abdur Rehman Bin Tahir ;
Atilla Özmen .
Telecommunication Systems, 2021, 77 :231-240